Terahertz sensing of 7 nm dielectric film with bound states in the continuum metasurfaces
Abstract
The fingerprint spectral response of several materials with terahertz electromagnetic radiation indicates that terahertz technology is an effective tool for sensing applications. However, sensing few nanometer thin-films of dielectrics with much longer terahertz waves (1 THz = 0.3 mm) is challenging. Here, we demonstrate a quasibound state in the continuum (BIC) resonance for sensing of a nanometer scale thin analyte deposited on a flexible metasurface. The large sensitivity originates from the strong local field confinement of the quasi-BIC Fano resonance state and extremely low absorption loss of a low-index cyclic olefin copolymer substrate. A minimum thickness of 7 nm thin-film of germanium is sensed on the metasurface, which corresponds to a deep subwavelength scale of λ/43 000, where λ is the resonance wavelength. The low-loss, flexible, and large mechanical strength of the quasi-BIC microstructured metamaterial sensor could be an ideal platform for developing ultrasensitive wearable terahertz sensors.
- Publication:
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Applied Physics Letters
- Pub Date:
- October 2019
- DOI:
- 10.1063/1.5110383
- arXiv:
- arXiv:1908.03662
- Bibcode:
- 2019ApPhL.115o1105S
- Keywords:
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- Physics - Optics;
- Physics - Applied Physics
- E-Print:
- 9 pages, 4 figures